Super resolution and color motion artifact correction in a pulsed color imaging system
The disclosure extends to methods, systems, and computer program products for producing an image in light deficient environments and associated structures, methods and features. The features of the systems and methods described herein may include providing improved resolution and color reproduction.
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This application is a continuation of Ser. No. 15/583,893, filed May 1, 2017 (now U.S. Pat. No. 10,205,877, issued Feb. 12, 2019), and which is a continuation of U.S. application Ser. No. 14/214,311, filed Mar. 14, 2014 (now U.S. Pat. No. 9,641,815, issued May 2, 2017) and which claims the benefit of (1) U.S. Provisional Application No. 61/791,473, filed Mar. 15, 2013; (2) U.S. Provisional Application No. 61/790,487, filed Mar. 15, 2013; and (3) U.S. Provisional Application No. 61/790,804, filed Mar. 15, 2013; all of which are incorporated herein by reference in their entireties, including but not limited to those portions that specifically appear hereinafter, the incorporation by reference being made with the following exception: In the event that any portion of any of the above-referenced applications are inconsistent with this application, this application supersedes said above-referenced provisional applications.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH OR DEVELOPMENTNot Applicable.
BACKGROUNDAdvances in technology have provided advances in imaging capabilities for medical use. One area that has enjoyed some of the most beneficial advances is that of endoscopic surgical procedures because of the advances in the components that make up an endoscope.
The disclosure relates generally to electromagnetic sensing and sensors. The disclosure also relates generally to increasing the resolution and color accuracy of a video stream. The features and advantages of the disclosure will be set forth in the description which follows, and in part will be apparent from the description, or may be learned by the practice of the disclosure without undue experimentation. The features and advantages of the disclosure may be realized and obtained by means of the instruments and combinations particularly pointed out in the appended claims.
Non-limiting and non-exhaustive implementations of the disclosure are described with reference to the following figures, wherein like reference numerals refer to like parts throughout the various views unless otherwise specified. Advantages of the disclosure will become better understood with regard to the following description and accompanying drawings where:
The disclosure extends to methods, systems, and computer based products for digital imaging that may be primarily suited to medical applications. In the following description of the disclosure, reference is made to the accompanying drawings, which form a part hereof, and in which is shown by way of illustration specific implementations in which the disclosure may be practiced. It is understood that other implementations may be utilized and structural changes may be made without departing from the scope of the disclosure.
For any digital imaging system, the final quality of video depends fundamentally on the engineering details of the front-end image electronic capture process. Broadly speaking, perceived image quality is dependent on the following properties:
Signal to noise ratio (SNR)
Dynamic range (DR)
Spatial resolution
Perception of visible unnatural artifacts
Perception of spatial distortion
Color fidelity and appeal
In general, manufacturers of cameras for many common purposes face continuous pressure toward greater miniaturization and lower cost. Both factors may have a detrimental effect however, on their ability to deliver high quality images.
More expensive cameras often use three monochrome sensors, precisely coupled to an elaborate arrangement of prisms and filters, since that provides for the best spatial resolution and color separation. Color cameras based on a single sensor generally have individual pixel-sized color filters fabricated onto the sensor in a mosaic arrangement. The most popular mosaic is the Bayer pattern, which exploits the fact that spatial resolution is more important for green data than for red or blue. While much cheaper to fabricate, Bayer based cameras cannot achieve the image quality realized by three-sensor solutions because of the spacing of the pattern. Sophisticated interpolation (demosaic) algorithms, such as that proposed by Malvar, He and Cutlar at Microsoft Research, help to reduce the resolution loss, but it can never be fully recovered. Another undesirable side-effect comes in the form of artifacts introduced by the color segmentation pattern, which are especially egregious around black and white edges. This can be addressed by lowering the optical MTF, but that may further degrade the final camera resolution.
If pixel count is a valued trait, that may necessitate smaller pixels in order to make a marketable product. Smaller pixels naturally have lower signal capacity which may reduce the dynamic range. Lower signal capacity also means the maximum possible signal to noise ratio is reduced, since photon shot noise scales as the square root of the signal charge. Lowering the pixel area also reduces the sensitivity, not only in proportion with the capture area, but quite likely at an even greater rate than that. This is because it becomes harder to direct photons into the light sensitive structure and thus to maintain quantum efficiency. Loss of sensitivity may be compensated by lowering the F-number, however, that may reduce the depth of focus (which impacts the resolution), and may lead to greater spatial distortion. Smaller pixels are also harder to manufacture consistently, which may result in greater defect rates, etc.
Rather than making the pixels smaller, it is thus desirable to seek other ways to bolster the resolution. This disclosure concerns an approach in which a monochrome sensor is employed. The color information is produced by illuminating different frames with alternating single wavelengths (i.e. red, green and blue) or combinations thereof. This allows the full pixel count to be exploited and Bayer artifacts to be avoided, as in three-sensor cameras. One issue with the frame-wise color switching arises from motion occurring within the scene, from frame to frame. Since different frames supply different color components, unnatural, colored effects may be visible, particularly in the vicinity of significant edges. Implementations may involve a full custom sensor capable of captured frame rates as high as e.g. 240 fps. Having access to such high rates allows for high progressive video rates (e.g. 60 P or higher), post-color reconstruction. While the high capture rate limits the impact of color motion artifacts, they may still be visible depending on the incident angular rate of motion of the scene, or of any object within it, relative to the sensor.
An implementation may employ an approach to colored frame pulsing in which the red, green and blue monochromatic sources are pulsed in combination. For every second frame, their relative energies are set in proportion to the standard luminance (Y) coefficients, so as to provide direct luminance information. On the alternate frames, the chrominance (Cb and Cr) information is provided by making a linear sum of the standard luminance and chrominance coefficients in order to bring the corresponding individual pulse energies to zero or positive values. The chrominance frames themselves alternate between Cb and Cr. This is referred to herein as the Y-Cb-Y-Cr sequence. This approach offers an advantage in terms of perceived resolution, compared with pure red, green and blue (R-G-B-G) pulsing, since all of the Y information per resulting output frame is derived from a single captured frame. With R-G-B-G pulsing, data is combined from three adjacent frames to provide the luminance. Therefore any motion will impact the resultant image sharpness.
A system designed for small diameter endoscopes with the image sensor placed at the distal end may be realized, which may preserve HD resolution, high inherent dynamic range and high sensitivity at the same time. The basis of this is a specially designed monochrome sensor which has fewer pixels than, e.g., a 1280×720 Bayer sensor, but which has superior spatial resolution by virtue of being monochrome. Maintaining a relatively large pixel at the expense of pixel count has multiple advantages for image quality, as discussed earlier.
In this disclosure, a method is described to further enhance the perceived resolution by applying the principal of super-resolution (SR) and to correct for the color artifacts resulting from the frame-wise modulation of color (CMAC), by making use of the motion information that is extracted by the SR algorithm.
Before the structure, systems and methods for producing an image in a light deficient environment are disclosed and described, it is to be understood that this disclosure is not limited to the particular structures, configurations, process steps, and materials disclosed herein as such structures, configurations, process steps, and materials may vary somewhat. It is also to be understood that the terminology employed herein is used for the purpose of describing particular embodiments only and is not intended to be limiting since the scope of the disclosure will be limited only by the appended claims and equivalents thereof.
In describing and claiming the subject matter of the disclosure, the following terminology will be used in accordance with the definitions set out below.
It must be noted that, as used in this specification and the appended claims, the singular forms “a,” “an,” and “the” include plural referents unless the context clearly dictates otherwise.
As used herein, the terms “comprising,” “including,” “containing,” “characterized by,” and grammatical equivalents thereof are inclusive or open-ended terms that do not exclude additional, unrecited elements or method steps.
As used herein, the phrase “consisting of” and grammatical equivalents thereof exclude any element or step not specified in the claim.
As used herein, the phrase “consisting essentially of” and grammatical equivalents thereof limit the scope of a claim to the specified materials or steps and those that do not materially affect the basic and novel characteristic or characteristics of the claimed disclosure.
As used herein, the term “proximal” shall refer broadly to the concept of a portion nearest an origin.
As used herein, the term “distal” shall generally refer to the opposite of proximal, and thus to the concept of a portion farther from an origin, or a furthest portion, depending upon the context.
As used herein, color sensors or multi spectrum sensors are those sensors known to have a color filter array (CFA) thereon so as to filter the incoming electromagnetic radiation into its separate components. In the visual range of the electromagnetic spectrum, such a CFA may be built on a Bayer pattern or modification thereon in order to separate green, red and blue spectrum components of the light.
In super resolution (SR), data from multiple, adjacent frames are combined to produce individual frames with higher spatial resolution. This depends upon accurate motion detection within local regions of the scene. Since the luminance plane is the most critical for spatial resolution, this is done for luminance frames only (or for green frames in the case of R-G-B-G light pulsing).
The systems and methods disclosed herein will be described in the context of the Y-Cb-Cr light pulsing scheme. However, the systems and methods of the disclosure are not limited or restricted to that particular pulsing scheme and are also applicable to the R-G-B-G image sequence scenario, with G taking the place of Y, and R and B taking the place of Cr and Cb.
There are four types of captured frames. Thus, for example, imagine f is a continuously rotating frame index which repeatedly counts from 0 to 3 during active video capture.
Then:
If (f mod 4)=0 or (f mod 4)=2 it is a Y frame, containing pure luminance information.
If (f mod 4)=1, it is a ‘Cb’ frame, containing a linear sum of Y and Cb data (Cb+Y).
If (f mod 4)=3, it is a ‘Cr’ frame, containing a linear sum of Y and Cr data (Cr+Y).
During frame reconstruction (color fusion), there may be one full color frame (in YCbCr space) generated for each luminance frame at the input. The luminance data may be combined with the chrominance data from the frame prior to and the frame following the Y frame. Note that given this pulsing sequence, the position of the Cb frame with respect to the Y frame ping-pongs between the before and after slots for alternate Y cases, as does its complementary Cr component. Therefore, the data from each captured Cb or Cr (i.e., C) frame may actually be utilized in two resultant full-color images. The minimum frame latency may be provided by performing the color fusion process during C frame capture.
Two frame FIFOs are constructed, one for Y frames 110 in arrival order, the other for Cb plus Cr frames 108. The number of frames to use for the super resolution (SR) process is an optional variable. The Y FIFO depth would normally be odd in an actual embodiment, and its size would be determined by the available processing, memory or memory-bandwidth, or by motion detection precision or acceptable latency considerations. CMAC can in principle be performed with the minimum FIFO depth of 3 frames for Y and 2 for C. For the super resolution (SR) aspect, the use of 5 ‘Y’ frames may result in better resolution. On Y frames, the current object frame may be the central frame in the Y FIFO. On chrominance frames, the two C frames that flank the central Y frame may be adjusted in order to line up their motion to the central Y frame.
The motion detection method described here may be based upon the block matching approach which provides x and y motion vectors for small, independent blocks of pixels of configurable dimensions. There are other motion detection algorithms that could also be used in principle. Block matching offers advantages for simplicity of implementation, particularly for real time processing in hardware. A 2-stage match process is described which provides for a super resolved frame with double the pixel count in x and y. Further stages could be added to increase the pixel count further, however many more buffered frames and computation would be required to make it worthwhile.
In addition to the raw, buffered, Y object frame sitting in the middle of the Y FIFO (referred to as RY), three ×2 up-scaled versions of it may be created. The first may be up-scaled using bilinear interpolation (referred to as buffer BL), the second using bicubic interpolation (buffer BC) and the third with no interpolation, just zeros where the empty pixels are (called NI). BL may be used in the block matching method, NI forms the baseline for the super-resolved frame and BC is the fallback pixel source for unfilled pixels within the super-resolved frame.
Referring to
Referring now to
Motion vectors for the two Y frames flanking RY, may be saved for the CMAC process, which occurs during the C frames.
The super resolution (SR) process itself may involve combining data from multiple Y frames into a central super-resolved frame, which is stationary with respect to the RY buffer. For each of the non-central Y buffers, a ×2 up-scaled version may be produced, in which the individual blocks have been shifted according to their (x,y) motion vectors. Any pixels at the ×2 resolution that are not filled after shifting are left blank.
The basis of the super-resolved frame is the NI buffer, which is the up-scaled version of RY with no interpolation. Three out of every four pixels in NI may be initially blank, and the primary objective is to fill the pixels with data from the up-scaled & shifted Y buffers. One approach may be to scan through the pixels looking for the first match for each empty pixel. At the end, any pixels that are still blank may be filled in from the BC buffer, which is the bicubic interpolated version of the central Y frame. Another approach to filling blank pixels may be to assess all possible candidates and choose the best one, based on some parameter that has been logged as a motion estimate quality metric. An example of such a metric may be the minimum sum of absolute differences for the originating block of pixels, or some derivative thereof. This requires at least one additional frame buffer per Y frame. Alternatively, all candidates can be combined in some way, e.g., as an average, which can be, e.g., weighted according to a quality parameter. In this case, even the non-zero pixels in NI can be substituted as well. The benefit may be that in addition to enhancing the resolution, the net signal to noise ratio is improved. Candidates with notably poor quality values can also be rejected altogether.
The pixel shifting can take place either at the original or the doubled resolution, following a bicubic upscale. Either way, after shifting there are many void locations with various random shapes and sizes to be filled in.
The application of the motion information is a little different for CMAC compared with super resolution (SR). Super resolution (SR) has the bicubic up-scaled version of RY as its default, so the worst case is that a pixel void is filled by interpolation using its sixteen closest neighbors in the correct motion frame. For CMAC there may be no predicting the distance of the nearest filled neighbors, all is known is that it is limited to the original block search distance divided by two (in the case of linear interpolation). Some means of interpolation is thus required to fill in the holes. One implementation to do this is for each missing pixel, find the distance to the closest filled pixel in +x, −x, +y and −y, then fill with an average level that has been weighted according to the reciprocal of each distance.
It should be noted that as used herein the term “light” is both a particle and a wavelength, and is intended to denote electromagnetic radiation that is detectable by a pixel array, and may be include wavelengths from the visible and non-visible spectrums of electromagnetic radiation. The term “partition” is used herein to mean a predetermined range of wavelengths of the electromagnetic spectrum that is less than the entire spectrum, or in other words, wavelengths that make up some portion of the electromagnetic spectrum. An emitter may be a light source that is controllable as to the portion of the electromagnetic spectrum that is emitted, the intensity of the emissions, or the duration of the emission, or all three. An emitter may emit light in any dithered, diffused, or columnated emission and may be controlled digitally or through analog methods or systems.
A pixel array of an image sensor may be paired with an emitter electronically, such that they are synced during operation for both receiving the emissions and for the adjustments made within the system. An emitter may be tuned to emit electromagnetic radiation, which may be pulsed in order to illuminate an object. It will be appreciated that the emitter may be in the form of a laser, which may be pulsed in order to illuminate an object. The emitter may pulse at an interval that corresponds to the operation and functionality of a pixel array. The emitter may pulse light in a plurality of electromagnetic partitions, such that the pixel array receives electromagnetic energy and produces a data set that corresponds (in time) with each specific electromagnetic partition.
A system may comprise a monochromatic pixel array (black and white), which is simply sensitive to electromagnetic radiation of any wavelength. The light emitter illustrated in the figure may be a laser emitter that is capable of emitting a green electromagnetic partition, a blue electromagnetic partition, and a red electromagnetic partition in any desired sequence. It will be appreciated that other light emitters may be used without departing from the scope of the disclosure, such as digital or analog based emitters.
During operation, the data created by the monochromatic sensor for any individual pulse may be assigned a specific color partition, wherein the assignment may be based on the timing of the pulsed color partition from the emitter. Even though the pixels are not color dedicated they can be assigned a color for any given data set based on timing. In one embodiment, three data sets representing RED, GREEN and BLUE pulses may then be combined to form a single image frame. It will be appreciated that the disclosure is not limited to any particular color combination or any particular electromagnetic partition, and that any color combination or any electromagnetic partition may be used in place of RED, GREEN and BLUE, such as Cyan, Magenta and Yellow, Ultraviolet, infra-red, or any other color combination, including all visible and non-visible wavelengths, without departing from the scope of the disclosure. The object to be imaged contains a red portion, green portion and a blue portion. As illustrated in the figure, the reflected light from the electromagnetic pulses only contains the data for the portion of the object having the specific color that corresponds to the pulsed color partition. Those separate color (or color interval) data sets can then be used to reconstruct the image by combining the data sets.
Implementations of the disclosure may comprise or utilize a special purpose or general-purpose computer including computer hardware, such as, for example, one or more processors and system memory, as discussed in greater detail below. Implementations within the scope of the disclosure may also include physical and other computer-readable media for carrying or storing computer-executable instructions and/or data structures. Such computer-readable media can be any available media that can be accessed by a general purpose or special purpose computer system. Computer-readable media that store computer-executable instructions are computer storage media (devices). Computer-readable media that carry computer-executable instructions are transmission media. Thus, by way of example, and not limitation, implementations of the disclosure can comprise at least two distinctly different kinds of computer-readable media: computer storage media (devices) and transmission media.
Computer storage media (devices) includes RAM, ROM, EEPROM, CD-ROM, solid state drives (“SSDs”) (e.g., based on RAM), Flash memory, phase-change memory (“PCM”), other types of memory, other optical disk storage, magnetic disk storage or other magnetic storage devices, or any other medium which can be used to store desired program code means in the form of computer-executable instructions or data structures and which can be accessed by a general purpose or special purpose computer.
A “network” is defined as one or more data links that enable the transport of electronic data between computer systems and/or modules and/or other electronic devices. In an implementation, a sensor and camera control unit may be networked in order to communicate with each other, and other components, connected over the network to which they are connected. When information is transferred or provided over a network or another communications connection (either hardwired, wireless, or a combination of hardwired or wireless) to a computer, the computer properly views the connection as a transmission medium. Transmissions media can include a network and/or data links which can be used to carry desired program code means in the form of computer-executable instructions or data structures and which can be accessed by a general purpose or special purpose computer. Combinations of the above should also be included within the scope of computer-readable media.
Further, upon reaching various computer system components, program code means in the form of computer-executable instructions or data structures that can be transferred automatically from transmission media to computer storage media (devices) (or vice versa). For example, computer-executable instructions or data structures received over a network or data link can be buffered in RAM within a network interface module (e.g., a “NIC”), and then eventually transferred to computer system RAM and/or to less volatile computer storage media (devices) at a computer system. RAM can also include solid state drives (SSDs or PCIx based real time memory tiered Storage, such as FusionIO). Thus, it should be understood that computer storage media (devices) can be included in computer system components that also (or even primarily) utilize transmission media.
Computer-executable instructions comprise, for example, instructions and data which, when executed at a processor, cause a general purpose computer, special purpose computer, or special purpose processing device to perform a certain function or group of functions. The computer executable instructions may be, for example, binaries, intermediate format instructions such as assembly language, or even source code. Although the subject matter has been described in language specific to structural features and/or methodological acts, it is to be understood that the subject matter defined in the appended claims is not necessarily limited to the described features or acts described above. Rather, the described features and acts are disclosed as example forms of implementing the claims.
Those skilled in the art will appreciate that the disclosure may be practiced in network computing environments with many types of computer system configurations, including, personal computers, desktop computers, laptop computers, message processors, control units, camera control units, hand-held devices, hand pieces, multi-processor systems, microprocessor-based or programmable consumer electronics, network PCs, minicomputers, mainframe computers, mobile telephones, PDAs, tablets, pagers, routers, switches, various storage devices, and the like. It should be noted that any of the above mentioned computing devices may be provided by or located within a brick and mortar location. The disclosure may also be practiced in distributed system environments where local and remote computer systems, which are linked (either by hardwired data links, wireless data links, or by a combination of hardwired and wireless data links) through a network, both perform tasks. In a distributed system environment, program modules may be located in both local and remote memory storage devices.
Further, where appropriate, functions described herein can be performed in one or more of: hardware, software, firmware, digital components, or analog components. For example, one or more application specific integrated circuits (ASICs) or field programmable gate arrays can be programmed to carry out one or more of the systems and procedures described herein. Certain terms are used throughout the following description and claims to refer to particular system components. As one skilled in the art will appreciate, components may be referred to by different names. This document does not intend to distinguish between components that differ in name, but not function.
Computing device 500 may be used to perform various procedures, such as those discussed herein. Computing device 500 can function as a server, a client, or any other computing entity. Computing device can perform various monitoring functions as discussed herein, and can execute one or more application programs, such as the application programs described herein. Computing device 500 can be any of a wide variety of computing devices, such as a desktop computer, a notebook computer, a server computer, a handheld computer, camera control unit, tablet computer and the like.
Computing device 500 includes one or more processor(s) 502, one or more memory device(s) 504, one or more interface(s) 506, one or more mass storage device(s) 508, one or more Input/Output (I/O) device(s) 510, and a display device 530 all of which are coupled to a bus 512. Processor(s) 502 include one or more processors or controllers that execute instructions stored in memory device(s) 504 and/or mass storage device(s) 508. Processor(s) 502 may also include various types of computer-readable media, such as cache memory.
Memory device(s) 504 include various computer-readable media, such as volatile memory (e.g., random access memory (RAM) 514) and/or nonvolatile memory (e.g., read-only memory (ROM) 516). Memory device(s) 504 may also include rewritable ROM, such as Flash memory.
Mass storage device(s) 508 include various computer readable media, such as magnetic tapes, magnetic disks, optical disks, solid-state memory (e.g., Flash memory), and so forth. As shown in
I/O device(s) 510 include various devices that allow data and/or other information to be input to or retrieved from computing device 500. Example I/O device(s) 510 include digital imaging devices, electromagnetic sensors and emitters, cursor control devices, keyboards, keypads, microphones, monitors or other display devices, speakers, printers, network interface cards, modems, lenses, CCDs or other image capture devices, and the like.
Display device 530 includes any type of device capable of displaying information to one or more users of computing device 500. Examples of display device 530 include a monitor, display terminal, video projection device, and the like.
Interface(s) 106 include various interfaces that allow computing device 500 to interact with other systems, devices, or computing environments. Example interface(s) 506 may include any number of different network interfaces 520, such as interfaces to local area networks (LANs), wide area networks (WANs), wireless networks, and the Internet. Other interface(s) include user interface 518 and peripheral device interface 522. The interface(s) 506 may also include one or more user interface elements 518. The interface(s) 506 may also include one or more peripheral interfaces such as interfaces for printers, pointing devices (mice, track pad, etc.), keyboards, and the like.
Bus 512 allows processor(s) 502, memory device(s) 504, interface(s) 506, mass storage device(s) 508, and I/O device(s) 510 to communicate with one another, as well as other devices or components coupled to bus 512. Bus 512 represents one or more of several types of bus structures, such as a system bus, PCI bus, IEEE 1394 bus, USB bus, and so forth.
For purposes of illustration, programs and other executable program components are shown herein as discrete blocks, although it is understood that such programs and components may reside at various times in different storage components of computing device 500, and are executed by processor(s) 502. Alternatively, the systems and procedures described herein can be implemented in hardware, or a combination of hardware, software, and/or firmware. For example, one or more application specific integrated circuits (ASICs) can be programmed to carry out one or more of the systems and procedures described herein.
Referring now to
It will be appreciated that the teachings and principles of the disclosure may be used in a reusable device platform, a limited use device platform, a re-posable use device platform, or a single-use/disposable device platform without departing from the scope of the disclosure. It will be appreciated that in a re-usable device platform an end-user is responsible for cleaning and sterilization of the device. In a limited use device platform the device can be used for some specified amount of times before becoming inoperable. Typical new device is delivered sterile with additional uses requiring the end-user to clean and sterilize before additional uses. In a re-posable use device platform a third-party may reprocess the device (e.g., cleans, packages and sterilizes) a single-use device for additional uses at a lower cost than a new unit. In a single-use/disposable device platform a device is provided sterile to the operating room and used only once before being disposed of.
Additionally, the teachings and principles of the disclosure may include any and all wavelengths of electromagnetic energy, including the visible and non-visible spectrums, such as infrared (IR), ultraviolet (UV), and X-ray.
It will be appreciated that various features disclosed herein provide significant advantages and advancements in the art. The following embodiments are exemplary of some of those features.
In the foregoing Detailed Description of the Disclosure, various features of the disclosure are grouped together in a single embodiment for the purpose of streamlining the disclosure. This method of disclosure is not to be interpreted as reflecting an intention that the claimed disclosure requires more features than are expressly recited in each claim. Rather, inventive aspects lie in less than all features of a single foregoing disclosed embodiment.
It is to be understood that the above-described arrangements are only illustrative of the application of the principles of the disclosure. Numerous modifications and alternative arrangements may be devised by those skilled in the art without departing from the spirit and scope of the disclosure and the appended claims are intended to cover such modifications and arrangements.
Thus, while the disclosure has been shown in the drawings and described above with particularity and detail, it will be apparent to those of ordinary skill in the art that numerous modifications, including, but not limited to, variations in size, materials, shape, form, function and manner of operation, assembly and use may be made without departing from the principles and concepts set forth herein.
The foregoing description has been presented for the purposes of illustration and description. It is not intended to be exhaustive or to limit the disclosure to the precise form disclosed. Many modifications and variations are possible in light of the above teaching. Further, it should be noted that any or all of the aforementioned alternate implementations may be used in any combination desired to form additional hybrid implementations of the disclosure.
Further, although specific implementations of the disclosure have been described and illustrated, the disclosure is not to be limited to the specific forms or arrangements of parts so described and illustrated. The scope of the disclosure is to be defined by the claims appended hereto, any future claims submitted here and in different applications, and their equivalents.
Claims
1. A digital imaging method for use in a light deficient environment comprising:
- actuating an emitter to emit a plurality of pulses of electromagnetic radiation to cause illumination within the light deficient environment;
- sensing reflected electromagnetic radiation from each of the plurality of pulses of electromagnetic radiation with a pixel array to create a first frame;
- upscaling the first frame using interpolation to generate a first upscaled frame;
- upscaling the first frame without using interpolation to generate a second upscaled frame, the second upscaled frame having a first set of empty pixels; and
- filling in the first set of empty pixels of the second upscaled frame with pixel data from the first upscaled frame.
2. The digital imaging method of claim 1, wherein the step of upscaling the first frame using interpolation comprises using bicubic interpolation.
3. The digital imaging method of claim 1, wherein the method further comprises:
- upscaling the first frame using another interpolation to generate a third upscaled frame.
4. The digital imaging method of claim 3, wherein the other interpolation to generate the third upscaled frame is bilinear interpolation; and
- wherein the third upscaled frame is used for block matching.
5. The digital imaging method of claim 1, wherein the step of actuating the emitter to emit the plurality of pulses of electromagnetic radiation to cause illumination within the light deficient environment comprises emitting electromagnetic pulses in a red, a green, and a blue color partition.
6. The digital imaging method of claim 5, wherein the pulses of electromagnetic radiation are emitted in a sequence of red-green-blue-green.
7. The digital imaging method of claim 1, wherein the step of actuating the emitter to emit the plurality of pulses of electromagnetic radiation to cause illumination within the light deficient environment comprises emitting pulses of luminance (Y), Chrominance Blue (Cb), and Chrominance Red (Cr).
8. The digital imaging method of claim 7, wherein the pulses of electromagnetic radiation are emitted in a sequence of Y-Cb-Y-Cr.
9. The digital imaging method of claim 1, further comprising:
- detecting motion of objects being imaged; and
- compensating for the detected motion.
10. The digital imaging method of claim 1, further comprising generating a full color frame.
3666885 | May 1972 | Hemsley et al. |
4011403 | March 8, 1977 | Epstein et al. |
4363963 | December 14, 1982 | Ando |
4433675 | February 28, 1984 | Konoshima |
4436095 | March 13, 1984 | Kruger |
4473839 | September 25, 1984 | Noda |
4644403 | February 17, 1987 | Sakai et al. |
4651226 | March 17, 1987 | Motoori et al. |
4692606 | September 8, 1987 | Sakai et al. |
4740837 | April 26, 1988 | Yanagisawa et al. |
4741327 | May 3, 1988 | Yabe |
4742388 | May 3, 1988 | Cooper et al. |
4745471 | May 17, 1988 | Takamura et al. |
4773396 | September 27, 1988 | Okazaki |
4782386 | November 1, 1988 | Ams et al. |
4786965 | November 22, 1988 | Yabe |
4832003 | May 23, 1989 | Yabe |
4845555 | July 4, 1989 | Yabe et al. |
4853772 | August 1, 1989 | Kikuchi |
4853773 | August 1, 1989 | Hibino et al. |
4866526 | September 12, 1989 | Ams et al. |
4884133 | November 28, 1989 | Kanno et al. |
4884134 | November 28, 1989 | Tsuji et al. |
4908701 | March 13, 1990 | Udagawa |
4918521 | April 17, 1990 | Yabe et al. |
4924856 | May 15, 1990 | Noguchi |
4938205 | July 3, 1990 | Nudelman |
4942473 | July 17, 1990 | Zeevi et al. |
4947246 | August 7, 1990 | Kikuchi |
4953539 | September 4, 1990 | Nakamura et al. |
4959710 | September 25, 1990 | Uehara et al. |
5001556 | March 19, 1991 | Nakamura et al. |
5016975 | May 21, 1991 | Sasaki et al. |
5021888 | June 4, 1991 | Kondou et al. |
5047846 | September 10, 1991 | Uchiyama et al. |
RE33854 | March 24, 1992 | Adair |
5103497 | April 7, 1992 | Hicks |
5111804 | May 12, 1992 | Funakoshi |
5133035 | July 21, 1992 | Hicks |
5187572 | February 16, 1993 | Nakamura et al. |
5188094 | February 23, 1993 | Adair |
5196938 | March 23, 1993 | Blessinger |
5200838 | April 6, 1993 | Nudelman et al. |
5220198 | June 15, 1993 | Tsuji |
5228430 | July 20, 1993 | Sakamoto |
5233416 | August 3, 1993 | Inoue |
5241170 | August 31, 1993 | Field, Jr. et al. |
5255087 | October 19, 1993 | Nakamura et al. |
5264925 | November 23, 1993 | Shipp et al. |
5313306 | May 17, 1994 | Kuban et al. |
5325847 | July 5, 1994 | Matsuno |
5365268 | November 15, 1994 | Minami |
5402768 | April 4, 1995 | Adair |
5408268 | April 18, 1995 | Shipp |
5411020 | May 2, 1995 | Ito |
5427087 | June 27, 1995 | Ito et al. |
5454366 | October 3, 1995 | Ito et al. |
5494483 | February 27, 1996 | Adair |
5523786 | June 4, 1996 | Parulski |
5550595 | August 27, 1996 | Hannah |
5594497 | January 14, 1997 | Ahem et al. |
5665959 | September 9, 1997 | Fossum et al. |
5704836 | January 6, 1998 | Norton et al. |
5730702 | March 24, 1998 | Tanaka et al. |
5734418 | March 31, 1998 | Danna |
5748234 | May 5, 1998 | Lippincott |
5749830 | May 12, 1998 | Kaneko et al. |
5754313 | May 19, 1998 | Pelchy et al. |
5783909 | July 21, 1998 | Hochstein |
5784099 | July 21, 1998 | Lippincott |
5857963 | January 12, 1999 | Pelchy et al. |
5887049 | March 23, 1999 | Fossum |
5929901 | July 27, 1999 | Adair et al. |
5949483 | September 7, 1999 | Fossum et al. |
5986693 | November 16, 1999 | Adair et al. |
6023315 | February 8, 2000 | Harrold et al. |
6038067 | March 14, 2000 | George |
6043839 | March 28, 2000 | Adair et al. |
6139489 | October 31, 2000 | Wampler et al. |
6141505 | October 31, 2000 | Miyata et al. |
6142930 | November 7, 2000 | Ito et al. |
6166768 | December 26, 2000 | Fossum et al. |
6184922 | February 6, 2001 | Saito et al. |
6184940 | February 6, 2001 | Sano |
6215517 | April 10, 2001 | Takahashi et al. |
6222175 | April 24, 2001 | Krymski |
6239456 | May 29, 2001 | Berezin et al. |
6272269 | August 7, 2001 | Naum |
6275255 | August 14, 2001 | Adair et al. |
6292220 | September 18, 2001 | Ogawa et al. |
6294775 | September 25, 2001 | Seibel et al. |
6310642 | October 30, 2001 | Adair et al. |
6320331 | November 20, 2001 | Iida et al. |
6331156 | December 18, 2001 | Haefele et al. |
6389205 | May 14, 2002 | Muckner et al. |
6416463 | July 9, 2002 | Tsuzuki et al. |
6429953 | August 6, 2002 | Feng |
6444970 | September 3, 2002 | Barbato |
6445022 | September 3, 2002 | Bama et al. |
6445139 | September 3, 2002 | Marshall et al. |
6464633 | October 15, 2002 | Hosoda et al. |
6466618 | October 15, 2002 | Messing et al. |
6485414 | November 26, 2002 | Neuberger |
6512280 | January 28, 2003 | Chen et al. |
6567115 | May 20, 2003 | Miyashita et al. |
6627474 | September 30, 2003 | Bama et al. |
6631230 | October 7, 2003 | Campbell |
6659940 | December 9, 2003 | Adler |
6665013 | December 16, 2003 | Fossum et al. |
6677992 | January 13, 2004 | Matsumoto et al. |
6687534 | February 3, 2004 | Tsujita |
6690466 | February 10, 2004 | Miller et al. |
6692431 | February 17, 2004 | Kazakevich |
6707499 | March 16, 2004 | Kung et al. |
6772181 | August 3, 2004 | Fu et al. |
6773392 | August 10, 2004 | Kikuchi et al. |
6791739 | September 14, 2004 | Ramanujan et al. |
6796939 | September 28, 2004 | Konomura et al. |
6799065 | September 28, 2004 | Niemeyer |
6809358 | October 26, 2004 | Hsieh et al. |
6838653 | January 4, 2005 | Campbell et al. |
6841947 | January 11, 2005 | Berg-johansen |
6847399 | January 25, 2005 | Ang |
6856712 | February 15, 2005 | Fauver et al. |
6873363 | March 29, 2005 | Barna et al. |
6879340 | April 12, 2005 | Chevallier |
6899675 | May 31, 2005 | Cline et al. |
6900829 | May 31, 2005 | Ozawa et al. |
6906745 | June 14, 2005 | Fossum et al. |
6921920 | July 26, 2005 | Kazakevich |
6933974 | August 23, 2005 | Lee |
6947090 | September 20, 2005 | Komoro et al. |
6961461 | November 1, 2005 | MacKinnon et al. |
6970195 | November 29, 2005 | Bidermann et al. |
6977733 | December 20, 2005 | Denk et al. |
6982740 | January 3, 2006 | Adair et al. |
6998594 | February 14, 2006 | Gaines et al. |
6999118 | February 14, 2006 | Suzuki |
7009634 | March 7, 2006 | Iddan et al. |
7009648 | March 7, 2006 | Lauxtermann et al. |
7030904 | April 18, 2006 | Adair et al. |
7037259 | May 2, 2006 | Hakamata et al. |
7068878 | June 27, 2006 | Crossman-Bosworth et al. |
7071979 | July 4, 2006 | Ohtani et al. |
7079178 | July 18, 2006 | Hynecek |
7102682 | September 5, 2006 | Baer |
7105371 | September 12, 2006 | Fossum et al. |
7106377 | September 12, 2006 | Bean et al. |
7119839 | October 10, 2006 | Mansoorian |
7151568 | December 19, 2006 | Kawachi et al. |
7159782 | January 9, 2007 | Johnston et al. |
7184084 | February 27, 2007 | Glenn |
7189226 | March 13, 2007 | Auld et al. |
7189961 | March 13, 2007 | Johnston et al. |
7208983 | April 24, 2007 | Imaizumi et al. |
7252236 | August 7, 2007 | Johnston et al. |
7258663 | August 21, 2007 | Doguchi et al. |
7261687 | August 28, 2007 | Yang |
7280139 | October 9, 2007 | Pahr et al. |
7298938 | November 20, 2007 | Johnston |
7312879 | December 25, 2007 | Johnston |
7319478 | January 15, 2008 | Dolt et al. |
7355155 | April 8, 2008 | Wang |
7356198 | April 8, 2008 | Chauville et al. |
7365768 | April 29, 2008 | Ono et al. |
7369140 | May 6, 2008 | King et al. |
7369176 | May 6, 2008 | Sonnenschein et al. |
7455638 | November 25, 2008 | Ogawa et al. |
7470229 | December 30, 2008 | Ogawa et al. |
7476197 | January 13, 2009 | Wiklof et al. |
7532760 | May 12, 2009 | Kaplinsky et al. |
7540645 | June 2, 2009 | Choi |
7544163 | June 9, 2009 | MacKinnon et al. |
7545434 | June 9, 2009 | Bean et al. |
7564935 | July 21, 2009 | Suzuki |
7567291 | July 28, 2009 | Bechtel et al. |
7573516 | August 11, 2009 | Krymski et al. |
7573519 | August 11, 2009 | Phan et al. |
7583872 | September 1, 2009 | Seibel et al. |
7616238 | November 10, 2009 | Avni et al. |
7630008 | December 8, 2009 | Sarwari |
7744528 | June 29, 2010 | Wallace et al. |
7783133 | August 24, 2010 | Dunki-Jacobs et al. |
7784697 | August 31, 2010 | Johnston et al. |
7791009 | September 7, 2010 | Johnston et al. |
7792378 | September 7, 2010 | Liege et al. |
7794394 | September 14, 2010 | Frangioni |
7813538 | October 12, 2010 | Carroll et al. |
7901974 | March 8, 2011 | Venezia et al. |
7914447 | March 29, 2011 | Kanai |
7916193 | March 29, 2011 | Fossum |
7935050 | May 3, 2011 | Luanava et al. |
7944566 | May 17, 2011 | Xie |
7952096 | May 31, 2011 | Rhodes |
7969097 | June 28, 2011 | Van De Ven |
7995123 | August 9, 2011 | Lee et al. |
8040394 | October 18, 2011 | Fossum et al. |
8054339 | November 8, 2011 | Fossum et al. |
8059174 | November 15, 2011 | Mann et al. |
8100826 | January 24, 2012 | MacKinnon et al. |
8159584 | April 17, 2012 | Iwabuchi et al. |
8193542 | June 5, 2012 | Machara |
8212884 | July 3, 2012 | Seibel et al. |
8231522 | July 31, 2012 | Endo et al. |
8300111 | October 30, 2012 | Iwane |
8372003 | February 12, 2013 | St. George et al. |
8382662 | February 26, 2013 | Soper et al. |
8396535 | March 12, 2013 | Wang et al. |
8423110 | April 16, 2013 | Barbato et al. |
8471938 | June 25, 2013 | Altice, Jr. et al. |
8476575 | July 2, 2013 | Mokhuatyuk |
8482823 | July 9, 2013 | Cheng |
8493474 | July 23, 2013 | Richardson |
8493564 | July 23, 2013 | Brukilacchio et al. |
8523367 | September 3, 2013 | Ogura |
8537203 | September 17, 2013 | Seibel et al. |
8559743 | October 15, 2013 | Liege et al. |
8582011 | November 12, 2013 | Dosluoglu |
8602971 | December 10, 2013 | Farr |
8605177 | December 10, 2013 | Rossi et al. |
8610808 | December 17, 2013 | Prescher et al. |
8614754 | December 24, 2013 | Fossum |
8625016 | January 7, 2014 | Fossum et al. |
8638847 | January 28, 2014 | Wang |
8648287 | February 11, 2014 | Fossum |
8649848 | February 11, 2014 | Crane et al. |
8668339 | March 11, 2014 | Kabuki et al. |
8675125 | March 18, 2014 | Cossairt et al. |
8698887 | April 15, 2014 | Makino et al. |
8836834 | September 16, 2014 | Hashimoto et al. |
8848063 | September 30, 2014 | Jo et al. |
8858425 | October 14, 2014 | Farr et al. |
8885034 | November 11, 2014 | Adair et al. |
9182337 | November 10, 2015 | Kamee et al. |
9349764 | May 24, 2016 | Lee et al. |
9509917 | November 29, 2016 | Blanquart et al. |
9516239 | December 6, 2016 | Blanquart et al. |
9634878 | April 25, 2017 | Bench et al. |
9762879 | September 12, 2017 | Blanquart et al. |
9777913 | October 3, 2017 | Talbert et al. |
10084944 | September 25, 2018 | Henley et al. |
10251530 | April 9, 2019 | Henley et al. |
10277875 | April 30, 2019 | Blanquart et al. |
20010016064 | August 23, 2001 | Tsuruoka et al. |
20010017649 | August 30, 2001 | Yaron |
20010030744 | October 18, 2001 | Chang |
20010055462 | December 27, 2001 | Seibel |
20020054219 | May 9, 2002 | Jaspers |
20020064341 | May 30, 2002 | Fauver et al. |
20020080248 | June 27, 2002 | Adair et al. |
20020080359 | June 27, 2002 | Denk et al. |
20020140844 | October 3, 2002 | Kurokawa et al. |
20020158976 | October 31, 2002 | Vni et al. |
20020158986 | October 31, 2002 | Baer |
20030007087 | January 9, 2003 | Hakamata et al. |
20030007686 | January 9, 2003 | Roever |
20030107664 | June 12, 2003 | Suzuki |
20030189663 | October 9, 2003 | Dolt et al. |
20030189705 | October 9, 2003 | Pardo |
20040082833 | April 29, 2004 | Adler et al. |
20040170712 | September 2, 2004 | Sadek El Mogy |
20050009982 | January 13, 2005 | Inagaki et al. |
20050027164 | February 3, 2005 | Barbato et al. |
20050038322 | February 17, 2005 | Banik |
20050041571 | February 24, 2005 | Ichihara |
20050113641 | May 26, 2005 | Bala |
20050122530 | June 9, 2005 | Denk et al. |
20050151866 | July 14, 2005 | Ando et al. |
20050200291 | September 15, 2005 | Naugler, Jr. et al. |
20050234302 | October 20, 2005 | MacKinnon et al. |
20050237384 | October 27, 2005 | Jess et al. |
20050261552 | November 24, 2005 | Mori et al. |
20050267329 | December 1, 2005 | Konstorum et al. |
20050277808 | December 15, 2005 | Sonnenschein et al. |
20050288546 | December 29, 2005 | Sonnenschein et al. |
20060038823 | February 23, 2006 | Arcas |
20060069314 | March 30, 2006 | Farr |
20060087841 | April 27, 2006 | Chern et al. |
20060197664 | September 7, 2006 | Zhang et al. |
20060202036 | September 14, 2006 | Wang et al. |
20060221250 | October 5, 2006 | Rossbach et al. |
20060226231 | October 12, 2006 | Johnston et al. |
20060264734 | November 23, 2006 | Kimoto et al. |
20060274335 | December 7, 2006 | Wittenstein |
20070010712 | January 11, 2007 | Negishi |
20070029629 | February 8, 2007 | Yazdi |
20070041448 | February 22, 2007 | Miller et al. |
20070083085 | April 12, 2007 | Bimkrant et al. |
20070129601 | June 7, 2007 | Johnston et al. |
20070147033 | June 28, 2007 | Ogawa et al. |
20070182723 | August 9, 2007 | Imai et al. |
20070182842 | August 9, 2007 | Sonnenschein et al. |
20070225560 | September 27, 2007 | Avni et al. |
20070244364 | October 18, 2007 | Luanava et al. |
20070244365 | October 18, 2007 | Wiklof |
20070276187 | November 29, 2007 | Wiklof et al. |
20070279486 | December 6, 2007 | Bayer et al. |
20070285526 | December 13, 2007 | Mann et al. |
20070293720 | December 20, 2007 | Bayer |
20080045800 | February 21, 2008 | Farr |
20080049132 | February 28, 2008 | Suzuki |
20080088719 | April 17, 2008 | Jacob et al. |
20080107333 | May 8, 2008 | Mazinani et al. |
20080136953 | June 12, 2008 | Bamea et al. |
20080158348 | July 3, 2008 | Karpen et al. |
20080164550 | July 10, 2008 | Chen et al. |
20080165360 | July 10, 2008 | Johnston |
20080192131 | August 14, 2008 | Kim et al. |
20080218598 | September 11, 2008 | Harada et al. |
20080218615 | September 11, 2008 | Huang et al. |
20080218824 | September 11, 2008 | Johnston et al. |
20080249369 | October 9, 2008 | Seibel et al. |
20090012361 | January 8, 2009 | MacKinnon et al. |
20090012368 | January 8, 2009 | Banik |
20090021588 | January 22, 2009 | Border et al. |
20090024000 | January 22, 2009 | Chen |
20090028465 | January 29, 2009 | Pan |
20090074265 | March 19, 2009 | Huang et al. |
20090091645 | April 9, 2009 | Trimeche et al. |
20090137893 | May 28, 2009 | Seibel et al. |
20090147077 | June 11, 2009 | Tani et al. |
20090154886 | June 18, 2009 | Lewis et al. |
20090160976 | June 25, 2009 | Chen et al. |
20090189530 | July 30, 2009 | Ashdown et al. |
20090208143 | August 20, 2009 | Yoon et al. |
20090227847 | September 10, 2009 | Tepper et al. |
20090232213 | September 17, 2009 | Jia |
20090259102 | October 15, 2009 | Koninckx et al. |
20090268063 | October 29, 2009 | Ellis-Monaghan et al. |
20090274380 | November 5, 2009 | Wedi |
20090292168 | November 26, 2009 | Farr |
20090309500 | December 17, 2009 | Reisch |
20090316116 | December 24, 2009 | Melville et al. |
20090322912 | December 31, 2009 | Blanquart |
20100026722 | February 4, 2010 | Kondo |
20100049180 | February 25, 2010 | Wells et al. |
20100069713 | March 18, 2010 | Endo et al. |
20100102199 | April 29, 2010 | Negley et al. |
20100121142 | May 13, 2010 | OuYang et al. |
20100121143 | May 13, 2010 | Sugimoto et al. |
20100123775 | May 20, 2010 | Shibasaki |
20100134608 | June 3, 2010 | Shibasaki |
20100134662 | June 3, 2010 | Bub |
20100135398 | June 3, 2010 | Wittmann et al. |
20100137684 | June 3, 2010 | Shibasaki et al. |
20100149421 | June 17, 2010 | Lin et al. |
20100157037 | June 24, 2010 | Iketani et al. |
20100157039 | June 24, 2010 | Sugai |
20100165087 | July 1, 2010 | Corso et al. |
20100171429 | July 8, 2010 | Garcia et al. |
20100182446 | July 22, 2010 | Matsubayashi |
20100198009 | August 5, 2010 | Farr et al. |
20100198134 | August 5, 2010 | Eckhouse et al. |
20100201797 | August 12, 2010 | Shizukuishi et al. |
20100208056 | August 19, 2010 | Olsson et al. |
20100228089 | September 9, 2010 | Hoffman et al. |
20100261961 | October 14, 2010 | Scott et al. |
20100274082 | October 28, 2010 | Iguchi et al. |
20100274090 | October 28, 2010 | Ozaki et al. |
20100305406 | December 2, 2010 | Braun et al. |
20100309333 | December 9, 2010 | Smith et al. |
20110028790 | February 3, 2011 | Farr et al. |
20110034769 | February 10, 2011 | Adair et al. |
20110051390 | March 3, 2011 | Lin et al. |
20110063483 | March 17, 2011 | Rossi et al. |
20110122301 | May 26, 2011 | Yamura et al. |
20110149358 | June 23, 2011 | Cheng |
20110181709 | July 28, 2011 | Wright et al. |
20110181840 | July 28, 2011 | Cobb |
20110184239 | July 28, 2011 | Wright et al. |
20110184243 | July 28, 2011 | Wright et al. |
20110208004 | August 25, 2011 | Feingold et al. |
20110212649 | September 1, 2011 | Stokoe et al. |
20110237882 | September 29, 2011 | Saito |
20110237884 | September 29, 2011 | Saito |
20110245605 | October 6, 2011 | Jacobsen et al. |
20110245616 | October 6, 2011 | Kobayashi |
20110255844 | October 20, 2011 | Wu et al. |
20110274175 | November 10, 2011 | Sumitomo |
20110279679 | November 17, 2011 | Samuel et al. |
20110288374 | November 24, 2011 | Hadani et al. |
20110291564 | December 1, 2011 | Huang |
20110292258 | December 1, 2011 | Adler et al. |
20110295061 | December 1, 2011 | Haramaty et al. |
20120004508 | January 5, 2012 | McDowall et al. |
20120014563 | January 19, 2012 | Bendall |
20120029279 | February 2, 2012 | Kucklick |
20120033118 | February 9, 2012 | Lee et al. |
20120041267 | February 16, 2012 | Benning et al. |
20120041534 | February 16, 2012 | Clerc et al. |
20120050592 | March 1, 2012 | Oguma |
20120078052 | March 29, 2012 | Cheng |
20120098933 | April 26, 2012 | Robinson et al. |
20120104230 | May 3, 2012 | Eismann et al. |
20120113506 | May 10, 2012 | Gmitro et al. |
20120120282 | May 17, 2012 | Goris |
20120140302 | June 7, 2012 | Xie et al. |
20120155761 | June 21, 2012 | Matsuoka |
20120157774 | June 21, 2012 | Kaku |
20120172665 | July 5, 2012 | Alyn et al. |
20120194686 | August 2, 2012 | Liu et al. |
20120197080 | August 2, 2012 | Murayama |
20120200685 | August 9, 2012 | Kawasaki et al. |
20120209071 | August 16, 2012 | Bayer et al. |
20120242975 | September 27, 2012 | Min et al. |
20120262621 | October 18, 2012 | Sato et al. |
20120281111 | November 8, 2012 | Jo et al. |
20120319586 | December 20, 2012 | Riesebosch |
20120327270 | December 27, 2012 | Shirakawa et al. |
20130018256 | January 17, 2013 | Kislev et al. |
20130035545 | February 7, 2013 | Ono |
20130053642 | February 28, 2013 | Mizuyoshi et al. |
20130070071 | March 21, 2013 | Peltie et al. |
20130126708 | May 23, 2013 | Blanquart |
20130127934 | May 23, 2013 | Chiang |
20130135589 | May 30, 2013 | Curtis et al. |
20130144120 | June 6, 2013 | Yamazaki |
20130155215 | June 20, 2013 | Shimada et al. |
20130155305 | June 20, 2013 | Shintani |
20130158346 | June 20, 2013 | Soper et al. |
20130184524 | July 18, 2013 | Shimada et al. |
20130211217 | August 15, 2013 | Yamaguchi et al. |
20130242069 | September 19, 2013 | Kobayashi |
20130244453 | September 19, 2013 | Sakamoto |
20130274597 | October 17, 2013 | Byrne et al. |
20130292571 | November 7, 2013 | Mukherjee et al. |
20130296652 | November 7, 2013 | Farr |
20130300837 | November 14, 2013 | DiCarlo et al. |
20130342690 | December 26, 2013 | Williams et al. |
20140022365 | January 23, 2014 | Yoshino |
20140031623 | January 30, 2014 | Kagaya |
20140005532 | January 2, 2014 | Choi et al. |
20140052004 | February 20, 2014 | D'Alfonso et al. |
20140066711 | March 6, 2014 | Farin et al. |
20140073852 | March 13, 2014 | Banik et al. |
20140073853 | March 13, 2014 | Swisher et al. |
20140078278 | March 20, 2014 | Lei |
20140088363 | March 27, 2014 | Sakai et al. |
20140104466 | April 17, 2014 | Fossum |
20140110485 | April 24, 2014 | Toa et al. |
20140142383 | May 22, 2014 | Blumenzweig et al. |
20140160318 | June 12, 2014 | Blanquart |
20140163319 | June 12, 2014 | Blanquart et al. |
20140198249 | July 17, 2014 | Tanaka et al. |
20140203084 | July 24, 2014 | Wang |
20140225215 | August 14, 2014 | Chien et al. |
20140267655 | September 18, 2014 | Richardson et al. |
20140267851 | September 18, 2014 | Rhoads |
20140267890 | September 18, 2014 | Lelescu |
20140268860 | September 18, 2014 | Talbert et al. |
20140275764 | September 18, 2014 | Shen et al. |
20140288365 | September 25, 2014 | Henley et al. |
20140300698 | October 9, 2014 | Wany |
20140316197 | October 23, 2014 | St. George et al. |
20140316199 | October 23, 2014 | Kucklick |
20140354788 | December 4, 2014 | Yano |
20140364689 | December 11, 2014 | Adair et al. |
20150023611 | January 22, 2015 | Salvador |
20150237245 | August 20, 2015 | Renard et al. |
20150271370 | September 24, 2015 | Henley et al. |
20160183775 | June 30, 2016 | Blanquart et al. |
20170085853 | March 23, 2017 | Blanquart et al. |
20170230574 | August 10, 2017 | Richardson et al. |
20190028621 | January 24, 2019 | Henley et al. |
20190133416 | May 9, 2019 | Henley et al. |
20190174058 | June 6, 2019 | Richardson et al. |
20190253685 | August 15, 2019 | Blanquart et al. |
1520696 | August 2004 | CN |
101079966 | November 2007 | CN |
201239130 | May 2009 | CN |
101449575 | June 2009 | CN |
101634749 | January 2010 | CN |
101755448 | June 2010 | CN |
102469932 | May 2012 | CN |
103185960 | July 2013 | CN |
0660616 | June 1995 | EP |
0904725 | March 1999 | EP |
1079255 | February 2001 | EP |
1116473 | July 2001 | EP |
1637062 | March 2006 | EP |
1712177 | October 2006 | EP |
1819151 | August 2007 | EP |
2359739 | August 2011 | EP |
2371268 | August 2011 | EP |
3459431 | March 2014 | EP |
H04-039789 | April 1992 | JP |
H07-240931 | September 1995 | JP |
1995-240931 | March 1997 | JP |
2000-051150 | February 2000 | JP |
2000-199863 | July 2000 | JP |
2000270230 | September 2000 | JP |
2001-308531 | November 2001 | JP |
2002-020816 | January 2002 | JP |
2002-028125 | January 2002 | JP |
2002-045329 | February 2002 | JP |
2002-112961 | April 2002 | JP |
2005-204741 | August 2005 | JP |
2007-029746 | February 2007 | JP |
2007143963 | June 2007 | JP |
2007-240931 | September 2007 | JP |
2008514304 | May 2008 | JP |
2008-153313 | July 2008 | JP |
2008264539 | November 2008 | JP |
2008295929 | December 2008 | JP |
2009-537283 | October 2009 | JP |
2010-17377 | January 2010 | JP |
2010-068992 | April 2010 | JP |
2010-125284 | June 2010 | JP |
2010-158415 | July 2010 | JP |
2011-055327 | March 2011 | JP |
2011514605 | May 2011 | JP |
2012-000160 | January 2012 | JP |
2012024450 | February 2012 | JP |
2013-27432 | February 2013 | JP |
2011-267098 | June 2013 | JP |
2014514782 | June 2014 | JP |
5682812 | January 2015 | JP |
2015525642 | September 2015 | JP |
A61-62440 | June 2017 | JP |
2015001195 | January 2016 | MX |
346174 | March 2017 | MX |
1996005693 | February 1996 | WO |
2006037034 | April 2006 | WO |
2009018613 | February 2009 | WO |
2009115885 | September 2009 | WO |
2009120228 | October 2009 | WO |
2012043771 | April 2012 | WO |
2012137845 | October 2012 | WO |
- Blumenfeld, et al. Three-dimensional image registration of MR proximal femur images for the analysis of trabecular bone parameters. Oct. 2008. [retrieved on Jul. 30, 2014] Retrieved from the internet: <URL: http://www.ncbi.nlm.nih.gov/pmc/articles/PMC2673590/>.
- Jack, Keith “Video Demystified: A Handbook for the Digital Engineer,” 2007 Fifth Edition. ISBN: 978-0-7506-8395-1, p. 21.
Type: Grant
Filed: Feb 11, 2019
Date of Patent: Feb 9, 2021
Patent Publication Number: 20190174058
Assignee: Depuy Synthes Products, Inc. (Raynham, MA)
Inventors: John Richardson (Westlake Village, CA), Laurent Blanquart (Westlake Village, CA)
Primary Examiner: Jonathan R Messmore
Application Number: 16/272,992
International Classification: H04N 5/232 (20060101); G06T 3/40 (20060101); H04N 9/07 (20060101); H04N 9/04 (20060101); H04N 5/225 (20060101); H04N 5/235 (20060101); H04N 13/239 (20180101);